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首页> 外文期刊>Ecosystems >Primary Productivity and Water Balance of Grassland Vegetation on Three Soils in a Continuous CO2 Gradient: Initial Results from the Lysimeter CO2 Gradient Experiment
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Primary Productivity and Water Balance of Grassland Vegetation on Three Soils in a Continuous CO2 Gradient: Initial Results from the Lysimeter CO2 Gradient Experiment

机译:连续CO2梯度条件下三种土壤草地植被的初级生产力和水分平衡:Lysimeter CO2 梯度实验的初步结果

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摘要

Field studies of atmospheric CO2 effects on ecosystems usually include few levels of CO2 and a single soil type, making it difficult to ascertain the shape of responses to increasing CO2 or to generalize across soil types. The Lysimeter CO2 Gradient (LYCOG) chambers were constructed to maintain a linear gradient of atmospheric CO2 (~250 to 500 μl l?1) on grassland vegetation established on intact soil monoliths from three soil series. The chambers maintained a linear daytime CO2 gradient from 263 μl l?1 at the subambient end of the gradient to 502 μl l?1 at the superambient end, as well as a linear nighttime CO2 gradient. Temperature variation within the chambers affected aboveground biomass and evapotranspiration, but the effects of temperature were small compared to the expected effects of CO2. Aboveground biomass on Austin soils was 40% less than on Bastrop and Houston soils. Biomass differences between soils resulted from variation in biomass of Sorghastrum nutans, Bouteloua curtipendula, Schizachyrium scoparium (C4 grasses), and Solidago canadensis (C3 forb), suggesting the CO2 sensitivity of these species may differ among soils. Evapotranspiration did not differ among the soils, but the CO2 sensitivity of leaf-level photosynthesis and water use efficiency in S. canadensis was greater on Houston and Bastrop than on Austin soils, whereas the CO2 sensitivity of soil CO2 efflux was greater on Bastrop soils than on Austin or Houston soils. The effects of soil type on CO2 sensitivity may be smaller for some processes that are tightly coupled to microclimate. LYCOG is useful for discerning the effects of soil type on the CO2 sensitivity of ecosystem function in grasslands.
机译:大气CO2 对生态系统影响的实地研究通常只包括少量的CO2 和单一的土壤类型,这使得难以确定对增加CO2的反应的形状或难以概括整个土壤类型。构造了Lysimeter CO2 梯度(LYCOG)室,以维持由完整的土壤整块中建立的草地植被上大气CO2 (〜250至500μll?1 )的线性梯度。土壤系列。腔室维持白天的线性CO2 梯度,从梯度下端的263μll?1 到上端的502μll?1 ,以及夜间的线性CO2 梯度。室内的温度变化影响了地上生物量和蒸散量,但温度的影响比二氧化碳的预期影响要小。奥斯汀土壤的地上生物量要比巴斯特罗普和休斯顿的土壤少40%。土壤之间的生物量差异是由高粱,牛膝草,Schizachyrium scoparium(C4 草)和加拿大一枝黄花(C3 forb)的生物量变化引起的,表明这些物种对CO2 的敏感性可能因土壤而异。蒸散量在土壤之间没有差异,但是休斯顿和巴斯特罗普地区加拿大一枝黄花的叶片水平光合作用和水分利用效率对CO2 的敏感性大于奥斯汀,而土壤对CO2 的敏感性巴斯特罗普土壤的CO2 外排量比奥斯汀或休斯顿的土壤大。在某些与小气候紧密相关的过程中,土壤类型对CO2敏感性的影响可能较小。 LYCOG可用于识别土壤类型对草原生态系统功能对CO2敏感性的影响。

著录项

  • 来源
    《Ecosystems》 |2009年第5期|699-714|共16页
  • 作者单位

    USDA-ARS Grassland Soil and Water Research Laboratory 808 E Blackland Rd Temple Texas 76502 USA;

    Department of Biology and Nicholas School of the Environment and Earth Sciences Duke University Durham North Carolina 27708 USA;

    Department of Biology and Nicholas School of the Environment and Earth Sciences Duke University Durham North Carolina 27708 USA;

    Department of Biological Sciences Tennessee State University Nashville Tennessee 37209 USA;

    USDA-ARS Grassland Soil and Water Research Laboratory 808 E Blackland Rd Temple Texas 76502 USA;

    Department of Biology and Nicholas School of the Environment and Earth Sciences Duke University Durham North Carolina 27708 USA;

    USDA-ARS Grassland Soil and Water Research Laboratory 808 E Blackland Rd Temple Texas 76502 USA;

    USDA-ARS Grassland Soil and Water Research Laboratory 808 E Blackland Rd Temple Texas 76502 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    carbon dioxide; climate change; grassland; hydrology; net primary productivity; photosynthesis; soil moisture; soil respiration; Solidago canadensis;

    机译:二氧化碳;气候变化;草地;水文学;净初级生产力;光合作用;土壤水分;土壤呼吸;加拿大一枝黄花;

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